Related Experiment Video
Updated: Jun 7, 2026

An Automated Differential Nuclear Staining Assay for Accurate Determination of Mitocan Cytotoxicity
Published on: May 12, 2020
Anticancer drugs that target metabolism: Is dichloroacetate the new paradigm?
Ioanna Papandreou1, Tereza Goliasova, Nicholas C Denko
1Department of Radiation Oncology, Division of Radiation and Cancer Biology, Stanford University School of Medicine, Stanford, CA, USA.
Abstract:
Recent findings in the fields of oncogenic regulation of metabolism, mitochondrial function and macromolecular synthesis have brought tumor metabolism and the Warburg effect back into the scientific limelight. A number of metabolic pathways that seem to be important for tumor growth are being touted as novel targets for anticancer drug development. One of the candidates in this class of drugs being investigated is dichloroacetate (DCA), a molecule used for over 25 years in the treatment of children with inborn errors in mitochondrial function. This pyruvate mimetic compound stimulates mitochondrial function by inhibiting the family of regulatory pyruvate dehydrogenase kinases (PDK1-4). The stimulation of mitochondrial function, at the expense of glycolysis, reverses the Warburg effect and is thought to block the growth advantage of highly glycolytic tumors. Interestingly, some of the recent in vitro findings have shown very modest "antitumor cell activity" of DCA when cells are treated in a dish. However, several studies have reported "antitumor activity" in model tumors. This apparent paradox raises the question, how do we evaluate cancer drugs designed to target tumor metabolism? Traditional approaches in cancer drug development have used in vitro assays as a first pass to evaluate potential lead compounds. The fact that DCA has better in vivo activity than in vitro activity suggests that there are unique aspects of solid tumor growth and metabolism that are difficult to recapitulate in vitro and may be important in determining the effectiveness of this class of drugs.
Insights
Dichloroacetate (DCA) shows promise as an anticancer drug targeting tumor metabolism by enhancing mitochondrial function. Its effectiveness in vivo suggests limitations in current in vitro models for evaluating such metabolic therapies.
Area of Science:
- Oncology
- Metabolic pathways
- Mitochondrial function
Background:
- Tumor metabolism and the Warburg effect are gaining attention as targets for cancer drug development.
- Dichloroacetate (DCA), a pyruvate mimetic, inhibits pyruvate dehydrogenase kinases (PDK1-4) to stimulate mitochondrial function.
- This mechanism aims to reverse the Warburg effect and inhibit the growth of glycolytic tumors.
Purpose of the Study:
- To explore the evaluation of cancer drugs targeting tumor metabolism, using dichloroacetate (DCA) as a case study.
- To address the discrepancy between in vitro and in vivo activity of DCA.
- To highlight the importance of in vivo models for assessing metabolic cancer therapies.
Main Methods:
- Review of recent findings on oncogenic regulation of metabolism and DCA's mechanism of action.
- Comparison of in vitro and in vivo antitumor activities of DCA.
- Analysis of traditional cancer drug development approaches.
Main Results:
- DCA demonstrates modest in vitro antitumor cell activity.
- DCA exhibits significant antitumor activity in preclinical tumor models.
- A notable difference exists between DCA's in vitro and in vivo efficacy.
Conclusions:
- The in vivo effectiveness of DCA suggests that solid tumor growth and metabolism possess unique characteristics not fully replicated in vitro.
- Traditional in vitro assays may be insufficient for evaluating cancer drugs targeting tumor metabolism.
- Further research into in vivo models is crucial for assessing the therapeutic potential of metabolic inhibitors like DCA.
Related Concept Videos
Targeted Cancer Therapies
There are several types of targeted therapies against specific...
Targeted Cancer Therapies
There are several types of targeted therapies against specific...
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...
Combination Therapies and Personalized Medicine
The combination of the drug acetazolamide and sulforaphane is a good example of combination therapy to treat cancer. The cells in the interior of a large tumor often die due to the hypoxic and...
Cancer Therapies
However, cancer treatments can pose several challenges, as therapies used to kill cancer cells are generally also toxic to normal cells. Moreover, cancer cells mutate rapidly and can develop resistance to chemical agents or radiation therapy. Besides, all types of cancer cells may not respond to the same therapy. Some cancer cells respond to one...
Chemotherapy-Induced Nausea and Vomiting: Dopamine Receptor Antagonists
Phenothiazines, such as prochlorperazine...

